JP3391621B2 - Treatment of aluminum residual ash - Google Patents
Treatment of aluminum residual ashInfo
- Publication number
- JP3391621B2 JP3391621B2 JP2023096A JP2023096A JP3391621B2 JP 3391621 B2 JP3391621 B2 JP 3391621B2 JP 2023096 A JP2023096 A JP 2023096A JP 2023096 A JP2023096 A JP 2023096A JP 3391621 B2 JP3391621 B2 JP 3391621B2
- Authority
- JP
- Japan
- Prior art keywords
- aluminum
- residual ash
- ash
- treatment
- nitride
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Expired - Fee Related
Links
Classifications
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P10/00—Technologies related to metal processing
- Y02P10/20—Recycling
Landscapes
- Processing Of Solid Wastes (AREA)
- Manufacture And Refinement Of Metals (AREA)
Description
【発明の詳細な説明】
【0001】
【発明の属する技術分野】本発明は、アルミニウムの溶
解の際、溶解浴の表面に発生するアルミニウム残灰を資
源化する処理方法に関するものである。
【0002】
【従来の技術】従来、アルミニウム残灰は、窯業原料、
地盤改良材等としての利用が考えられている。例えば、
アルミニウム残灰は、酸化アルミニウム30〜60%、
金属アルミニウム20〜60%、窒化アルミニウム1〜
10%、その他が酸化珪素、酸化鉄等の金属酸化物から
なるものであって水に不安定であるのでそれを酸化処理
し、窒化アルミニウムを酸化アルミニウムに変化させて
から利用することが提案されている(特公平7−100
831号公報)。
【0003】
【発明が解決しようとする課題】本発明者らは、酸化ア
ルミニウムと窒化アルミニウムの混合物は、溶鋼スラグ
や溶融金属との濡れ性が悪く耐食性が良好であることを
知っており、また金属アルミニウムを窒化して窒化アル
ミニウム粉末を製造する技術に携わったことの経験を活
かし、耐火物に好適な上記混合物をアルミニウム残灰の
成分に着目し、それを用いて安価かつ容易に製造するこ
とを目的とするものである。
【0004】
【課題を解決するための手段】すなわち、本発明は、ア
ルミニウム残灰を窒化雰囲気中、温度700℃以上で加
熱し、アルミニウム残灰に含まれる金属アルミニウムを
窒化アルミニウムに変化させることを特徴とするアルミ
ニウム残灰の処理方法である。
【0005】
【発明の実施の形態】以下、更に詳しく本発明について
説明する。
【0006】本発明で使用されるアルミニウム残灰(以
下、「被処理原料」ともいう。)は、通常の入手品で十
分であり、酸化アルミニウムと金属アルミニウムを含ん
でいるものであれば良い。処理品に含まれる窒化アルミ
ニウムと酸化アルミニウムの割合を変えたい場合には、
アルミニウム残灰とアルミニウム製品加工屑との割合を
調整したり、アルミナや金属アルミニウを配合すること
によって行うことができる。被処理原料の粒度として
は、1mm以下であることが望ましい。
【0007】被処理原料は炉内に充填され、窒化雰囲気
中、温度700℃以上好ましくは1200℃以上で加熱
処理される。窒化雰囲気としては、窒素及び/又はアン
モニアを含む非酸化性雰囲気が好ましく、特に窒素及び
/又はアンモニアの分圧が高いほど窒化反応が容易に進
行するので好都合である。被処理原料は、粉末の状態で
容器にいれても良く、また圧粉体に成型して炉内に充填
しても良い。炉としては、バッチ炉や、ロータリーキル
ン等の連続炉を使用することができる。このように、本
発明においては、被処理原料の窒化は、金属アルミニウ
ム粉末の直接窒化法による窒化アルミニウム粉末の製造
技術をそのまま採用することができ、しかも窒化アルミ
ニウム粉末を製造する際におけるような厳格な窒化雰囲
気の調節や温度管理は必要でない。
【0008】本発明においては、被処理原料が窒化雰囲
気中で加熱処理されると、被処理原料中に含まれる金属
アルミニウムは発熱を伴いながら窒化アルミニウムとな
るが、酸化アルミニウムは殆ど変化を受けないので、酸
化アルミニウムと窒化アルミニウムを含んだ混合物が製
造される。得られた混合物には不純物が多いので電子材
料用途には推奨することができないが、溶鋼スラグや溶
融金属に対する耐食性が良好であるので不純物の影響の
少ない耐火物用途として十分に使用することができる。
【0009】
【実施例】実施例1
アルミニウム残灰(Al2O340%,AlN4%,A
l53%,その他Fe2O3,SiO2,MgO等)を
粒度0.5mm下に解砕した。この被処理原料をSiC
製ルツボに圧力をかけずに充填し炉内にセットした。炉
内に窒素ガスを流入し、炉内酸素濃度が0.1%以下と
なってから窒素ガスを流入しながら100℃/hrの速
度で昇温し、1400℃で1時間保持した後室温まで冷
却して処理品を取り出した。それを乳鉢で粗砕し、ボー
ルミルで微粉砕してからX線回折分析を行ったところ、
未反応金属アルミニウムの残留は認められず、窒化アル
ミニウム、酸化アルミニウムの存在が確認され、窒素分
析値から求めた窒化アルミニウムは63%であった。
【0010】実施例2
アルミニウム残灰(Al2O364%,AlN8%,A
l12%,その他Fe2O3,SiO2,MgO,Ca
O等)を0.5mm下に解砕した。これを窒化処理して
も得られる処理品の窒化アルミニウム含有量は約25%
程度であると予測できるため、市販のアトマイズドアル
ミニウム粉末(44μm下)を上記アルミニウム残灰1
00重量部に対し50重量部を混合した。この被処理原
料を実施例1と同様にして窒化処理をしたところ、未反
応金属アルミニウムの残留は認められず、窒化アルミニ
ウムの割合は53%と算出された。
【0011】参考例1
アルミニウム製品の加工屑(Al2O32%,Al96
%,その他)を0.5mm下に解砕してなる被処理原料
を用いたこと以外は実施例1と同様にして窒化処理をし
た。その結果、処理品には未反応金属アルミニウムの残
留は認められず、また窒化アルミニウムは98%と算出
された。
【0012】
【発明の効果】本発明によれば、酸化アルミニウムと窒
化アルミニウムとを含み、溶鋼スラグや溶融金属に対す
る耐食性の良好な混合物を安価かつ容易に製造すること
ができる。また、産業廃棄物の資源化を図ることができ
る。DETAILED DESCRIPTION OF THE INVENTION
[0001]
BACKGROUND OF THE INVENTION 1. Field of the Invention
Generates on the surface of the melting bath during dissolutionAluminum residue ashFund
It is related to a processing method used as a source.
[0002]
2. Description of the Related Art Conventionally, aluminum residual ash has been used as a raw material for ceramics,
It is considered to be used as a ground improvement material. For example,
Aluminum ash is 30-60% aluminum oxide,
20-60% metal aluminum, 1-aluminum nitride
10%, others from metal oxides such as silicon oxide and iron oxide
Is oxidized because it is unstable in water
And convert aluminum nitride to aluminum oxide
It is proposed to use from
No. 831).
[0003]
DISCLOSURE OF THE INVENTION The present inventors have found that
The mixture of aluminum and aluminum nitride is
And good corrosion resistance due to poor wettability with
I know and also nitride aluminum
Leverage our experience in mining powder manufacturing technology
However, the above mixture suitable for refractories isAluminum residue ashof
Focus on the ingredients and use them to manufacture them inexpensively and easily.
And for the purpose.
[0004]
That is, the present invention provides:A
Luminium residue ashIn a nitriding atmosphere at a temperature of 700 ° C or more.
Heat upAluminum residue ashMetal aluminum contained in
Characterized by changing to aluminum nitrideAluminum
AshProcessing method.
[0005]
BEST MODE FOR CARRYING OUT THE INVENTION
explain.
[0006] Used in the present inventionAluminum residue ash(After
Below, it is also called "raw material". ) Is a regular product
Minutes, including aluminum oxide and metallic aluminum
Anything is good. Aluminum nitride contained in processed products
If you want to change the ratio of aluminum and aluminum oxide,
The ratio of aluminum residue ash to aluminum product processing waste
Adjusting or blending alumina or metallic aluminum
Can be done by As the particle size of the raw material to be treated
Is preferably 1 mm or less.
[0007] The raw material to be processed is charged into a furnace, and a nitriding atmosphere is
Medium, heated at 700 ° C or higher, preferably 1200 ° C or higher
It is processed. As the nitriding atmosphere, nitrogen and / or
A non-oxidizing atmosphere containing monia is preferred, especially nitrogen and
And / or the higher the partial pressure of ammonia, the easier the nitridation reaction
It is convenient to go. Raw material to be processed
It can be placed in a container or molded into a green compact and filled into the furnace
You may. As a furnace, a batch furnace or a rotary kill
A continuous furnace such as a furnace can be used. Thus, the book
In the invention, the nitriding of the raw material to be treated
Of Aluminum Nitride Powder by Direct Nitriding Method of Aluminum Powder
Technology can be used as it is, and aluminum nitride
Strict nitridation atmosphere, such as when producing powdered nickel
No air conditioning or temperature control is required.
In the present invention, the raw material to be treated is in a nitride atmosphere.
When heated in the air, the metal contained in the raw material to be processed
Aluminum is converted into aluminum nitride while generating heat.
However, aluminum oxide hardly changes,
A mixture containing aluminum nitride and aluminum nitride
Built. Since the resulting mixture contains many impurities,
Is not recommended for use in steelmaking,
Good corrosion resistance to molten metal
It can be used satisfactorily for low refractory applications.
[0009]
Embodiment 1
Aluminum residue ash (Al2O340%, AlN 4%, A
153%, other Fe2O3, SiO2, MgO)
Crushed to a particle size of 0.5 mm. The raw material to be treated is SiC
The crucible was filled without applying pressure and set in a furnace. Furnace
Nitrogen gas flows into the furnace, and the oxygen concentration in the furnace becomes 0.1% or less.
After that, at a rate of 100 ° C / hr while introducing nitrogen gas
Temperature, hold at 1400 ° C for 1 hour, then cool to room temperature
And the processed product was taken out. Crush it in a mortar,
X-ray diffraction analysis after fine milling
No residual unreacted metallic aluminum was observed,
The presence of minium and aluminum oxide was confirmed and the nitrogen content
The aluminum nitride obtained from the analysis value was 63%.
Embodiment 2
Aluminum residue ash (Al2O364%, AlN 8%, A
112%, other Fe2O3, SiO2, MgO, Ca
O, etc.) were crushed 0.5 mm below. After nitriding this
The aluminum nitride content of the processed product obtained is about 25%
Commercialized atomized
Minium powder (under 44 μm) was mixed with the above aluminum residue ash 1
50 parts by weight were mixed with respect to 00 parts by weight. This raw material
When the material was subjected to nitriding treatment in the same manner as in Example 1,
No residual aluminum was found, and aluminum nitride
The percentage of um was calculated to be 53%.
[0011]Reference Example 1
Processing waste of aluminum products (Al2O32%, Al96
%, Other) to be crushed to 0.5 mm below
Nitriding treatment was performed in the same manner as in Example 1 except that
Was. As a result, unreacted metallic aluminum remains in the treated product.
No residue was found, and aluminum nitride was calculated as 98%
Was done.
[0012]
According to the present invention, aluminum oxide and nitrogen
Containing aluminum chloride for molten steel slag and molten metal
Cheap and easy to produce a mixture with good corrosion resistance
Can be. In addition, industrial waste can be recycled.
You.
Claims (1)
700℃以上で加熱し、アルミニウム残灰に含まれる金
属アルミニウムを窒化アルミニウムに変化させることを
特徴とするアルミニウム残灰の処理方法。(57) in [Claims 1 aluminum residual ash a nitriding atmosphere, aluminum heated at a temperature 700 ° C. or more, and varying the metallic aluminum contained in the aluminum residual ash aluminum nitride How to treat residual ash .
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2023096A JP3391621B2 (en) | 1996-02-06 | 1996-02-06 | Treatment of aluminum residual ash |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2023096A JP3391621B2 (en) | 1996-02-06 | 1996-02-06 | Treatment of aluminum residual ash |
Publications (2)
Publication Number | Publication Date |
---|---|
JPH09209053A JPH09209053A (en) | 1997-08-12 |
JP3391621B2 true JP3391621B2 (en) | 2003-03-31 |
Family
ID=12021381
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
JP2023096A Expired - Fee Related JP3391621B2 (en) | 1996-02-06 | 1996-02-06 | Treatment of aluminum residual ash |
Country Status (1)
Country | Link |
---|---|
JP (1) | JP3391621B2 (en) |
Families Citing this family (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP5342353B2 (en) * | 2009-07-15 | 2013-11-13 | タマティーエルオー株式会社 | Method for producing aluminum nitride-containing material |
-
1996
- 1996-02-06 JP JP2023096A patent/JP3391621B2/en not_active Expired - Fee Related
Also Published As
Publication number | Publication date |
---|---|
JPH09209053A (en) | 1997-08-12 |
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